L. Capozza
University of Mainz
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Featured researches published by L. Capozza.
Physical Review Letters | 2004
Frank Maas; Achenbach P; Aulenbacher K; S. Baunack; L. Capozza; J. Diefenbach; Grimm K; Y. Imai; T. Hammel; von Harrach D; Kabuss Em; R. Kothe; J. H. Lee; Lorente A; Lopes Ginja A; Nungesser L; E. Schilling; G. Stephan; C. Weinrich; I. Altarev; Arvieux J; Collin B; Frascaria R; Guidal M; Kunne R; Marchand D; M. Morlet; Ong S; van de Wiele J; Kowalski S
We report on a measurement of the parity-violating asymmetry in the scattering of longitudinally polarized electrons on unpolarized protons at a Q2 of 0.230 (GeV/c)(2) and a scattering angle of theta (e) = 30 degrees - 40 degrees. Using a large acceptance fast PbF2 calorimeter with a solid angle of delta omega = 0.62 sr, the A4 experiment is the first parity violation experiment to count individual scattering events. The measured asymmetry is A(phys)=(-5.44+/-0.54(stat)+/-0.26(sys))x10(-6). The standard model expectation assuming no strangeness contributions to the vector form factors is A(0) = (-6.30+/-0.43) x 10(-6). The difference is a direct measurement of the strangeness contribution to the vector form factors of the proton. The extracted value is G(s)(E) + 0.225G(s)(M) = 0.039+/-0.034 or F(s)(1) + 0.130F(s)(2) = 0.032+/-0.028.
Physical Review Letters | 2005
Frank Maas; Aulenbacher K; S. Baunack; L. Capozza; J. Diefenbach; Gläser B; T. Hammel; von Harrach D; Y. Imai; Kabuss Em; R. Kothe; J. H. Lee; Lorente A; E. Schilling; Schwaab D; Sikora M; G. Stephan; Weber G; C. Weinrich; I. Altarev; Arvieux J; Elyakoubi M; Frascaria R; Kunne R; M. Morlet; Ong S; van de Wiele J; Kowalski S; Plaster B; Suleiman R
We report on a measurement of the parity violating asymmetry in the elastic scattering of polarized electrons off unpolarized protons with the A4 apparatus at MAMI in Mainz at a four momentum transfer value of Q(2)=0.108 (GeV/c)(2) and at a forward electron scattering angle of 30 degrees p)=[-1.36+/-0.29(stat)+/-0.13(syst)]x10(-6). The expectation from the standard model assuming no strangeness contribution to the vector current is A(0)=(-2.06+/-0.14)x10(-6). We have improved the statistical accuracy by a factor of 3 as compared to our previous measurements at a higher Q2. We have extracted the strangeness contribution to the electromagnetic form factors from our data to be G(s)(E)+0.106G(s)(M)=0.071+/-0.036 at Q(2)=0.108 (GeV/c)(2). We again find the value for G(s)(E)+0.106G(s)(M) to be positive, this time at an improved significance level of two sigma.
Physical Review Letters | 2009
S. Baunack; K. Aulenbacher; D. Balaguer Ríos; L. Capozza; J. Diefenbach; B. Gläser; D. von Harrach; Y. Imai; E. Kabuß; R. Kothe; J. H. Lee; H. Merkel; M. C. Mora Espí; U. Müller; E. Schilling; G. Stephan; C. Weinrich; J. Arvieux; M. A. El-Yakoubi; R. Frascaria; R. Kunne; Frank Maas; M. Morlet; S. Ong; J. Van de Wiele; S. B. Kowalski; Y. Prok; S. Taylor
A new measurement of the parity violating asymmetry in elastic electron scattering on hydrogen at backward angles and at a four momentum transfer of Q;{2} = 0.22 (Ge V / c);{2} is reported here. The measured asymmetry is A_{LR} = (-17.23 +/- 0.82_{stat} +/- 0.89_{syst}) x 10;{-6}. The standard model prediction assuming no strangeness is A_{0} = (-15.87 +/- 1.22) x 10;{-6}. In combination with previous results from measurements at forward angles, it is possible to disentangle for the first time the strange form factors at this momentum transfer, G_{E};{s} = 0.050 +/- 0.038 +/- 0.019 and G_{M};{s} = -0.14 +/- 0.11 +/- 0.11.
Physical Review Letters | 2005
Frank Maas; Aulenbacher K; S. Baunack; L. Capozza; J. Diefenbach; Gläser B; Y. Imai; T. Hammel; von Harrach D; Kabuss Em; R. Kothe; J. H. Lee; Sanchez-Lorente A; E. Schilling; Schwaab D; G. Stephan; Weber G; C. Weinrich; I. Altarev; Arvieux J; Elyakoubi M; Frascaria R; Kunne R; Morlet M; Ong S; Vandewiele J; Kowalski S; Suleiman R; Taylor S
We report on a measurement of the asymmetry in the scattering of transversely polarized electrons off unpolarized protons, A( perpendicular), at two Q2 values of 0.106 and 0.230 (GeV/c)(2) and a scattering angle of 30 degrees <theta(e)<40 degrees . The measured transverse asymmetries are A( perpendicular)(Q(2)=0.106 (GeV/c)(2))=(-8.59+/-0.89(stat)+/-0.75(syst))x10(-6) and A( perpendicular)(Q(2)=0.230 (GeV/c)(2))=(-8.52+/-2.31(stat)+/-0.87(syst))x10(-6). The first errors denote the statistical error and the second the systematic uncertainties. From comparison with theoretical estimates of A( perpendicular) we conclude that piN-intermediate states give a substantial contribution to the imaginary part of the two-photon amplitude. There is no obvious reason why this should be different for the real part of the two-photon amplitude, which enters into the radiative corrections for the Rosenbluth separation measurements of the electric form factor of the proton.
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2016
R. Pérez Benito; D. Khaneft; C. O'Connor; L. Capozza; J. Diefenbach; B. Gläser; Y. Ma; Frank Maas; D. Rodríguez Piñeiro
Abstract Precise luminosity measurements for the OLYMPUS two-photon exchange experiment at DESY were performed by counting scattering events with alternating beams of electrons and positrons incident on atomic electrons in a gaseous hydrogen target. Final products of Moller, Bhabha, and pair annihilation interactions were observed using a pair of lead fluoride Cherenkov calorimeters with custom housings and electronics, adapted from a system used by the A4 parity violation experiment at MAMI. This paper describes the design, calibration, and operation of these detectors. An explanation of the Monte Carlo methods used to simulate the physical processes involved both at the scattering vertices and in the detector apparatus is also included.
Physical Review Letters | 2017
D. Balaguer Ríos; J. H. Lee; B. Gläser; J. Diefenbach; M. C. Mora Espí; J. Van de Wiele; R. Kothe; E. Kabuß; K. Aulenbacher; C. Weinrich; U. Müller; R. Frascaria; S. Ong; M. Morlet; D. von Harrach; L. Capozza; S. Baunack; Y. Imai; J. Arvieux; Frank Maas; H. Merkel; E. Schilling; M. A. El-Yakoubi; R. Kunne; S. B. Kowalski; Y. Prok
New measurements of the beam normal single spin asymmetry in the electron elastic and quasielastic scattering on the proton and deuteron, respectively, at large backward angles and at ⟨Q^{2}⟩=0.22 (GeV/c)^{2} and ⟨Q^{2}⟩=0.35 ( GeV/c)^{2} are reported. The experimentally observed asymmetries are compared with the theoretical calculation of Pasquini and Vanderhaeghen [Phys. Rev. C 70, 045206 (2004).PRVCAN0556-281310.1103/PhysRevC.70.045206]. The agreement of the measurements with the theoretical calculations shows a dominance of the inelastic intermediate excited states of the nucleon, πN and the Δ resonance. The measurements explore a new, important parameter region of the exchanged virtual photon virtualities.
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2006
T. Hammel; P. Achenbach; S. Baunack; L. Capozza; J. Diefenbach; K. Grimm; D. von Harrach; Y. Imai; E. Kabuß; R. Kothe; J. H. Lee; A.Lopes Ginja; Frank Maas; A. Sanchez Lorente; E. Schilling; G. Stephan; C. Weinrich; I. Altarev
A water Cherenkov luminosity monitor system with associated electronics has been developed for the A4 parity violation experiment at MAMI. The detector system measures the luminosity of the hydrogen target hit by the MAMI electron beam and monitors the stability of the liquid hydrogen target. Both are required for the precise study of the count rate asymmetries in the scattering of longitudinally polarized electrons on unpolarized protons. Any helicity correlated fluctuation of the target density leads to false asymmetries. The performance of the luminosity monitor, investigated in about 2000 h with electron beam, and the results of its application in the A4 experiment are presented.
Journal of Physics: Conference Series | 2015
L. Capozza; Frank Maas; O Noll; D Rodriguez Pineiro; R Valente
The PANDA experiment at the new FAIR facility will cover a broad experimental programme in hadron structure and spectroscopy. As a multipurpose detector, the PANDA spectrometer needs to ensure almost 4π coverage of the scattering solid angle, full and accurate multiple-particle event reconstruction and very good particle identification capabilities. The electromagnetic calorimeter (EMC) will be a key item for many of these aspects. Particle energies ranging from some MeVs to several GeVs have to be measured with a relative resolution of 1% ⊕ 2%/√E/GeV . It will be a homogeneous calorimeter made of PbWO4 crystals and will be operated at -25°C, in order to improve the scintillation light yield. With the exception of the very forward section, the light will be detected by large area avalanche photodiodes (APDs). The current pulses from the APDs will be integrated, amplified and shaped by ASIC chips which were developed for this purpose. The whole calorimeter has been designed in three sections: a forward end-cap, a central barrel and a backward end-cap (BWEC). In this contribution, a status report on the development of the BWEC is presented.
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2011
S. Baunack; D. Balaguer Ríos; L. Capozza; J. Diefenbach; R. Frascaria; B. Gläser; D.v. Harrach; Y. Imai; R. Kothe; R. Kunne; J. H. Lee; Frank Maas; M. C. Mora Espí; M. Morlet; S. Ong; E. Schilling; J. Van de Wiele; C. Weinrich
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2006
I. Altarev; E. Schilling; S. Baunack; L. Capozza; J. Diefenbach; K. Grimm; T. Hammel; D. von Harrach; Y. Imai; E. Kabuß; R. Kothe; J. H. Lee; A.Lopes Ginja; Frank Maas; A. Sanchez Lorente; G. Stephan; C. Weinrich